Electrochemistry at the Edge of a van der Waals Heterostructure

Author:

Plačkić Aleksandra12ORCID,Neubert Tilmann J.3ORCID,Patel Kishan1ORCID,Kuhl Michel3ORCID,Watanabe Kenji4ORCID,Taniguchi Takashi4ORCID,Zurutuza Amaia5ORCID,Sordan Roman1ORCID,Balasubramanian Kannan3ORCID

Affiliation:

1. L‐NESS, Department of Physics Politecnico di Milano Via Anzani 42 Como 22100 Italy

2. BioSense Institute University of Novi Sad Dr Zorana Đinđića 1 Novi Sad 21000 Serbia

3. School of Analytical Sciences Adlershof (SALSA), IRIS Adlershof & Department of Chemistry Humboldt‐Universität zu Berlin Unter den Linden 6 10099 Berlin Germany

4. National Institute for Materials Science 1‐1 Namiki Tsukuba 305‐0044 Japan

5. Graphenea Semiconductor SLU Mikeletegi Pasealekua 83 San Sebastián 20009 Spain

Abstract

AbstractArtificial van der Waals heterostructures, obtained by stacking two‐dimensional (2D) materials, represent a novel platform for investigating physicochemical phenomena and applications. Here, the electrochemistry at the one‐dimensional (1D) edge of a graphene sheet, sandwiched between two hexagonal boron nitride (hBN) flakes, is reported. When such an hBN/graphene/hBN heterostructure is immersed in a solution, the basal plane of graphene is encapsulated by hBN, and the graphene edge is exclusively available in the solution. This forms an electrochemical nanoelectrode, enabling the investigation of electron transfer using several redox probes, e.g., ferrocene(di)methanol, hexaammineruthenium, methylene blue, dopamine and ferrocyanide. The low capacitance of the van der Waals edge electrode facilitates cyclic voltammetry at very high scan rates (up to 1000 V s−1), allowing voltammetric detection of redox species down to micromolar concentrations with sub‐second time resolution. The nanoband nature of the edge electrode allows operation in water without added electrolyte. Finally, two adjacent edge electrodes are realized in a redox‐cycling format. All the above‐mentioned phenomena can be investigated at the edge, demonstrating that nanoscale electrochemistry is a new application avenue for van der Waals heterostructures. Such an edge electrode will be useful for studying electron transfer mechanisms and the detection of analyte species in ultralow sample volumes.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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